arXiv:2606.13794eess.SYcs.AI2026-06

用可解释模型提升冗余飞机控制分配精度与效率

An integrated interpretable control effectiveness learning and nonlinear control allocation methodology for overactuated aircrafts

论文配图:An integrated interpretable control effectiveness learning and nonlinear control allocation methodology for overactuated aircrafts
图 1 · 摘自论文原文
  • 基于稀疏非线性动力学识别构建物理约束的控制效能模型
  • 精度媲美全非线性机载模型,计算成本显著降低
  • 支持在线自适应,适合故障容错与复杂飞行场景

非线性动力学及多执行机构间的强耦合破坏了传统线性控制分配的假设。当飞行进入非线性效应主导区域时,线性分配器因模型失配导致精度下降,进而影响飞行控制系统性能与鲁棒性。高保真机载模型和黑箱数据驱动方法虽可恢复精度,但分别带来实时分配难以承受的计算负担和缺乏可解释性,不利于验证与故障诊断。本文通过稀疏非线性动力学识别(SINDy),从代表性飞行数据中学习一个显式的、物理约束的控制效能映射模型。该映射紧凑、可解释,并支持解析导数,可在不依赖机载模型的前提下高效集成于非线性求解器,同时考虑执行机构动态。引入在线自适应机制,通过监控预测残差,在检测到显著飞行器变化时更新模型,实现作动器失效或工况变化下的平稳重构。该方法在高保真非线性基准飞机上评估,涵盖多种剧烈机动,精度接近全非线性机载模型,且相比现有基线显著降低计算开销。

原文摘要 · Abstract (English)

Nonlinear dynamics and the strong couplings that arise between multiple effectors undermine the assumptions behind conventional, linear control allocation techniques. When flight enters regimes where nonlinear effects dominate, linear allocators exhibit reduced accuracy due to increased model mismatch, which subsequently degrades performance and robustness of the flight control system. High fidelity onboard models and black box data driven approaches can recover accuracy across the flight envelope, but respectively impose computational burdens prohibitive for real time allocation and sacrifice the interpretability required for verification and fault diagnosis. This paper addresses these limitations by learning an explicit, physics constrained analytical model of the control effectiveness mapping from representative flight data using Sparse Identification of Nonlinear Dynamics. The resulting mapping is compact, interpretable, and admits analytical derivatives, enabling efficient computation within nonlinear solvers that additionally incorporate actuator dynamics, without requiring an onboard model. An online adaptation mechanism monitors prediction residuals and refreshes the model when significant plant changes are detected, providing graceful reconfiguration under actuator failures and varying operating conditions. The methodology is evaluated on a high fidelity nonlinear benchmark aircraft across a range of aggressive maneuvers, achieving accuracy comparable to a full nonlinear onboard model while substantially reducing computational cost relative to established baselines.

飞行控制非线性系统可解释性控制分配

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